Table of Content
6HNO3 | + | [Cu(NH3)4](OH)2 | → | Cu(NO3)2 | + | 2H2O | + | 4NH4NO3 | |
nitric acid | copper(ii) nitrate | water | ammonium nitrate | ||||||
(lỏng) | (lỏng) | (lỏng) | (lỏng) | (lỏng) | |||||
(không màu) | (xanh chàm) | (xanh) | (không màu) | (không màu) | |||||
6 | 1 | 1 | 2 | 4 | Hệ số | ||||
Nguyên - Phân tử khối (g/mol) | |||||||||
Số mol | |||||||||
Khối lượng (g) |
No information found for this chemical equation
Explanation: The ideal environmental conditions for a reaction, such as temperature, pressure, catalysts, and solvent. Catalysts are substances that speed up the pace (velocity) of a chemical reaction without being consumed or becoming part of the end product. Catalysts have no effect on equilibrium situations.
In a full sentence, you can also say HNO3 (nitric acid) reacts with [Cu(NH3)4](OH)2 () and produce Cu(NO3)2 (copper(ii) nitrate) and H2O (water) and NH4NO3 (ammonium nitrate)
This equation does not have any specific information about phenomenon.
In this case, you just need to observe to see if product substance NH4NO3 (ammonium nitrate), appearing at the end of the reaction.
Or if any of the following reactant substances [Cu(NH3)4](OH)2, disappearing
We no further information about this chemical reactions.
nitric acid
24HNO3 + FeCuS2 → Cu(NO3)2 + 10H2O + 2H2SO4 + 18NO2 + Fe(NO3)3 (6x-2y)HNO3 + FexOy → (3x-y)H2O + 3x-2yNO2 + xFe(NO3)3 Cr + 3HCl + HNO3 → 2H2O + NO + CrCl3 View all equations with HNO3 as reactant
6HNO3 + [Cu(NH3)4](OH)2 → Cu(NO3)2 + 2H2O + 4NH4NO3 6HCl + [Cu(NH3)4](OH)2 → 2H2O + 4NH4Cl + CuCl2 View all equations with [Cu(NH3)4](OH)2 as reactant
Cu(OH)2 + 4NH3 → [Cu(NH3)4](OH)2 CuO + 4NH4OH → 3H2O + [Cu(NH3)4](OH)2 7NH4OH + 2CuSO4 + NH4HS → 2(NH4)2SO4 + CuS + 5H2O + [Cu(NH3)4](OH)2 View all equations with [Cu(NH3)4](OH)2 as product
Cu(OH)2 + 4NH3 → [Cu(NH3)4](OH)2 CuO + 4NH4OH → 3H2O + [Cu(NH3)4](OH)2 Cu(OH)2 + 4NH4OH → 4H2O + [Cu(NH3)4](OH)2 View all equations with [Cu(NH3)4](OH)2 as product
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